Small molecule SWELL1 complex induction improves glycemic control and nonalcoholic fatty liver disease in murine Type 2 diabetes.
Susheel K GunasekarLitao XieAshutosh KumarJuan HongPratik R ChhedaChen KangDavid M KernChau My-TaJoshua MaurerJohn HeebinkEva E GerberWojciech J GrzesikMacaulay Elliot-HudsonYanhui ZhangPhillip KeyChaitanya A KulkarniJoseph W BealsGordon I SmithIsaac SamuelJessica K SmithPeter NauYumi ImaiRyan D SheldonEric B TaylorDaniel J LernerAndrew W NorrisSamuel KleinStephen Graf BrohawnRobert J KernsRajan SahPublished in: Nature communications (2022)
Type 2 diabetes is associated with insulin resistance, impaired pancreatic β-cell insulin secretion, and nonalcoholic fatty liver disease. Tissue-specific SWELL1 ablation impairs insulin signaling in adipose, skeletal muscle, and endothelium, and impairs β-cell insulin secretion and glycemic control. Here, we show that I Cl,SWELL and SWELL1 protein are reduced in adipose and β-cells in murine and human diabetes. Combining cryo-electron microscopy, molecular docking, medicinal chemistry, and functional studies, we define a structure activity relationship to rationally-design active derivatives of a SWELL1 channel inhibitor (DCPIB/SN-401), that bind the SWELL1 hexameric complex, restore SWELL1 protein, plasma membrane trafficking, signaling, glycemic control and islet insulin secretion via SWELL1-dependent mechanisms. In vivo, SN-401 restores glycemic control, reduces hepatic steatosis/injury, improves insulin-sensitivity and insulin secretion in murine diabetes. These findings demonstrate that SWELL1 channel modulators improve SWELL1-dependent systemic metabolism in Type 2 diabetes, representing a first-in-class therapeutic approach for diabetes and nonalcoholic fatty liver disease.
Keyphrases
- glycemic control
- type diabetes
- insulin resistance
- blood glucose
- skeletal muscle
- small molecule
- molecular docking
- weight loss
- electron microscopy
- high fat diet
- adipose tissue
- protein protein
- nitric oxide
- metabolic syndrome
- cardiovascular disease
- cell therapy
- structure activity relationship
- endothelial cells
- high resolution
- polycystic ovary syndrome
- molecular dynamics simulations
- single cell
- oxidative stress
- binding protein
- bone marrow
- mesenchymal stem cells
- cell proliferation
- cell cycle arrest
- amino acid
- mass spectrometry
- drug discovery
- radiofrequency ablation
- pluripotent stem cells